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解析弱耦合双硝基吡咯并[3,2-b]吡咯中的异常荧光。

Deciphering the unusual fluorescence in weakly coupled bis-nitro-pyrrolo[3,2-b]pyrroles.

作者信息

Poronik Yevgen M, Baryshnikov Glib V, Deperasińska Irena, Espinoza Eli M, Clark John A, Ågren Hans, Gryko Daniel T, Vullev Valentine I

机构信息

Institute of Organic Chemistry, Polish Academy of Sciences, Warsaw, Poland.

Department of Physics and Astronomy, Uppsala University, Uppsala, Sweden.

出版信息

Commun Chem. 2020 Dec 17;3(1):190. doi: 10.1038/s42004-020-00434-6.

Abstract

Electron-deficient π-conjugated functional dyes lie at the heart of organic optoelectronics. Adding nitro groups to aromatic compounds usually quenches their fluorescence via inter-system crossing (ISC) or internal conversion (IC). While strong electronic coupling of the nitro groups with the dyes ensures the benefits from these electron-withdrawing substituents, it also leads to fluorescence quenching. Here, we demonstrate how such electronic coupling affects the photophysics of acceptor-donor-acceptor fluorescent dyes, with nitrophenyl acceptors and a pyrrolo[3,2-b]pyrrole donor. The position of the nitro groups and the donor-acceptor distance strongly affect the fluorescence properties of the bis-nitrotetraphenylpyrrolopyrroles. Concurrently, increasing solvent polarity quenches the emission that recovers upon solidifying the media. Intramolecular charge transfer (CT) and molecular dynamics, therefore, govern the fluorescence of these nitro-aromatics. While balanced donor-acceptor coupling ensures fast radiative deactivation and slow ISC essential for large fluorescence quantum yields, vibronic borrowing accounts for medium dependent IC via back CT. These mechanistic paradigms set important design principles for molecular photonics and electronics.

摘要

缺电子π共轭功能染料是有机光电子学的核心。向芳香族化合物中添加硝基通常会通过系间窜越(ISC)或内转换(IC)淬灭其荧光。虽然硝基与染料的强电子耦合确保了这些吸电子取代基带来的益处,但它也会导致荧光淬灭。在这里,我们展示了这种电子耦合如何影响具有硝基苯基受体和吡咯并[3,2 - b]吡咯供体的受体 - 供体 - 受体荧光染料的光物理性质。硝基的位置和供体 - 受体距离强烈影响双硝基四苯基吡咯并吡咯的荧光性质。同时,溶剂极性的增加会淬灭发射,而在介质固化时发射会恢复。因此,分子内电荷转移(CT)和分子动力学决定了这些硝基芳烃的荧光。虽然平衡的供体 - 受体耦合确保了快速辐射失活和缓慢的ISC,这对于高荧光量子产率至关重要,但振动借由反向CT解释了与介质相关的IC。这些机制范例为分子光子学和电子学设定了重要的设计原则。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/82da/9814504/edc7b84dead3/42004_2020_434_Fig1_HTML.jpg

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